Aug 2026· Sustainability· 0 citations· 46 references
Abstract
Growing environmental concerns associated with Portland cement production, along with the continuous accumulation of construction and demolition waste, have intensified the need for sustainable construction materials and effective recycling strategies. This study experimentally investigates the performance of fly ash-based geopolymer concrete (GPC) incorporating recycled concrete aggregate (RCA) as a partial replacement for natural coarse aggregate, compared to conventional ordinary Portland cement concrete (OPC), with a particular focus on integrated durability performance. Ten mixtures were prepared, including five GPC and five OPC mixes with RCA replacement levels of 0–100% by volume. Mechanical properties were evaluated through compressive, splitting tensile, and flexural strength tests, while durability performance was assessed using water permeability, chloride penetration, acid resistance, elevated temperature exposure up to 1000 °C, and accelerated corrosion tests, supported by SEM–EDX analysis. Results show that GPC outperforms OPC across all replacement levels. Optimal performance was achieved at 20–40% RCA, while at 60% RCA a slight reduction in strength was observed; however, the values remained relatively high, particularly for GPC mixtures, indicating stable performance. A significant reduction occurred only at full replacement. GPC also exhibited lower permeability, enhanced corrosion resistance, improved thermal stability, and better resistance to acid attack. This study provides strong evidence that GPC can effectively compensate for the inherent limitations of RCA, offering a durable and eco-efficient alternative for structural and infrastructure applications.
The global demand for concrete has escalated rapidly due to the swift expansion of residential and commercial infrastructure. This phenomenon has consequently intensified cement manufacturing and aggravated anthropogenic carbon dioxide (CO2) emissions. To tackle these environmental issues and restrict fluid-induced mic...
Chia-Soi Lee, Julia Binti Mohamed Uyob, Muhammad Akmal Bin Daud· ICEETE Conference Series· 0 citations
Waste bricks from construction demolition occupy a large amount of land and cannot be effectively utilized as resources. Processing them into powder for use as a cement substitute can effectively reduce carbon emissions and dispose of solid waste. This study assessed how recycled brick powder (RBP) particle size and...
Ke-Jie Jiang, Yuan-Yuan Zhao, Shi-Qi Sun· Journal of materials in civi...· 0 citations
Abstract The incorporation of construction and demolition waste (CDW) into construction materials has stood out due to the search for sustainable practices, facing the environmental challenge of waste generation and reducing CO2 emissions in cement production, in addition to the consumption of raw materials. Therefore,...
Emanuely Lizandra Correia, Leandro Henrique Benittez, Fernanda Giannotti da Silva Ferreira· Revista IBRACON de Estrutura...· 0 citations
Both construction and demolition (C&D) activity and the production of concrete rely on huge amounts of natural sand and gravel. The use of Recycled Aggregate Concrete (RAC) with Recycled Aggregate (RA) from C&D waste could provide a pathway to addressing both pressures simultaneously. This review gathers and aggregates...
A. Patwary, Mazhar Hasan· American Journal of Civil En...· 0 citations
The use of recycled constituents in engineering cementitious composites (ECC) offers a promising pathway to reduce the environmental burden of cement-based materials while maintaining high mechanical performance. In this study, recycled concrete powder (RCP) and waste tire steel fiber (WTSF) were incorporated into ECC,...
Aneel Manan, Jawad Ahmad, Fawad Ahmad et al.· PLoS ONE· 0 citations
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